US8005636B2 - Method of controlling clock signal - Google Patents
Method of controlling clock signal Download PDFInfo
- Publication number
- US8005636B2 US8005636B2 US12/564,045 US56404509A US8005636B2 US 8005636 B2 US8005636 B2 US 8005636B2 US 56404509 A US56404509 A US 56404509A US 8005636 B2 US8005636 B2 US 8005636B2
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- Prior art keywords
- trim
- cycles
- clock
- bit
- data
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F21/00—Security arrangements for protecting computers, components thereof, programs or data against unauthorised activity
- G06F21/70—Protecting specific internal or peripheral components, in which the protection of a component leads to protection of the entire computer
- G06F21/71—Protecting specific internal or peripheral components, in which the protection of a component leads to protection of the entire computer to assure secure computing or processing of information
- G06F21/73—Protecting specific internal or peripheral components, in which the protection of a component leads to protection of the entire computer to assure secure computing or processing of information by creating or determining hardware identification, e.g. serial numbers
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41J—TYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
- B41J2/01—Ink jet
- B41J2/015—Ink jet characterised by the jet generation process
- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04505—Control methods or devices therefor, e.g. driver circuits, control circuits aiming at correcting alignment
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41J—TYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
- B41J2/01—Ink jet
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- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04508—Control methods or devices therefor, e.g. driver circuits, control circuits aiming at correcting other parameters
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
- B41J2/01—Ink jet
- B41J2/015—Ink jet characterised by the jet generation process
- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/0451—Control methods or devices therefor, e.g. driver circuits, control circuits for detecting failure, e.g. clogging, malfunctioning actuator
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
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- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
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- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04528—Control methods or devices therefor, e.g. driver circuits, control circuits aiming at warming up the head
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- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04541—Specific driving circuit
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
- B41J2/01—Ink jet
- B41J2/015—Ink jet characterised by the jet generation process
- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04543—Block driving
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
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- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04563—Control methods or devices therefor, e.g. driver circuits, control circuits detecting head temperature; Ink temperature
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04573—Timing; Delays
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B41J—TYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
- B41J2/00—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
- B41J2/005—Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
- B41J2/01—Ink jet
- B41J2/015—Ink jet characterised by the jet generation process
- B41J2/04—Ink jet characterised by the jet generation process generating single droplets or particles on demand
- B41J2/045—Ink jet characterised by the jet generation process generating single droplets or particles on demand by pressure, e.g. electromechanical transducers
- B41J2/04501—Control methods or devices therefor, e.g. driver circuits, control circuits
- B41J2/04586—Control methods or devices therefor, e.g. driver circuits, control circuits controlling heads of a type not covered by groups B41J2/04575 - B41J2/04585, or of an undefined type
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- G06F21/554—Detecting local intrusion or implementing counter-measures involving event detection and direct action
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- G06F21/57—Certifying or maintaining trusted computer platforms, e.g. secure boots or power-downs, version controls, system software checks, secure updates or assessing vulnerabilities
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- G06F21/575—Secure boot
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- G06F21/60—Protecting data
- G06F21/64—Protecting data integrity, e.g. using checksums, certificates or signatures
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- G06F21/74—Protecting specific internal or peripheral components, in which the protection of a component leads to protection of the entire computer to assure secure computing or processing of information operating in dual or compartmented mode, i.e. at least one secure mode
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- G06F21/78—Protecting specific internal or peripheral components, in which the protection of a component leads to protection of the entire computer to assure secure storage of data
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K5/00—Manipulating of pulses not covered by one of the other main groups of this subclass
- H03K5/125—Discriminating pulses
- H03K5/1252—Suppression or limitation of noise or interference
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N1/00—Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
- H04N1/40—Picture signal circuits
- H04N1/405—Halftoning, i.e. converting the picture signal of a continuous-tone original into a corresponding signal showing only two levels
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41J—TYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
- B41J2202/00—Embodiments of or processes related to ink-jet or thermal heads
- B41J2202/01—Embodiments of or processes related to ink-jet heads
- B41J2202/20—Modules
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
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- Y10T29/00—Metal working
- Y10T29/49—Method of mechanical manufacture
- Y10T29/49401—Fluid pattern dispersing device making, e.g., ink jet
Definitions
- the present invention relates to a mechanism for adjusting an onboard system clock on an integrated circuit.
- the invention has primarily been developed for use in a printer that uses a plurality of security chips to ensure that modifications to operating parameters can only be modified in an authorized manner, and will be described with reference to this application. However, it will be appreciated that the invention can be applied to other fields in which analogous problems are faced.
- the quality of a joint region between adjacent printhead modules relies on factors including a precision with which the abutting ends of each module can be manufactured, the accuracy with which they can be aligned when assembled into a single printhead, and other more practical factors such as management of ink channels behind the nozzles. It will be appreciated that the difficulties include relative vertical displacement of the printhead modules with respect to each other.
- printhead controllers are usually dedicated application specific integrated circuits (ASICs) designed for specific use with a single type of printhead module, that is used by itself rather than with other modules. It would be desirable to provide a way in which different lengths and types of printhead modules could be accounted for using a single printer controller.
- ASICs application specific integrated circuits
- Printer controllers face other difficulties when two or more printhead modules are involved, especially if it is desired to send dot data to each of the printheads directly (rather than via a single printhead connected to the controller).
- One concern is that data delivered to different length controllers at the same rate will cause the shorter of the modules to be ready for printing before any longer modules.
- the issue may not be of importance, but for large length differences, the result is that the bandwidth of a shared memory from which the dot data is supplied to the modules is effectively left idle once one of the modules is full and the remaining module or modules is still being filled. It would be desirable to provide a way of improving memory bandwidth usage in a system comprising a plurality of printhead modules of uneven length.
- any printing system that includes multiple nozzles on a printhead or printhead module, there is the possibility of one or more of the nozzles failing in the field, or being inoperative due to manufacturing defect.
- the printhead also outputs fixative on a per-nozzle basis, it is also desirable that the fixative is provided in such a way that dead nozzles are compensated for.
- a printer controller can take the form of an integrated circuit, comprising a processor and one or more peripheral hardware units for implementing specific data manipulation functions. A number of these units and the processor may need access to a common resource such as memory.
- One way of arbitrating between multiple access requests for a common resource is timeslot arbitration, in which access to the resource is guaranteed to a particular requester during a predetermined timeslot.
- Timeslot arbitration does not take into account these differences, which may result in accesses being performed in a less efficient manner than might otherwise be the case. It would be desirable to provide a timeslot arbitration scheme that improved this efficiency as compared with prior art timeslot arbitration schemes.
- a cache miss in which an attempt to load data or an instruction from a cache fails results in a memory access followed by a cache update. It is often desirable when updating the cache in this way to update data other than that which was actually missed.
- a typical example would be a cache miss for a byte resulting in an entire word or line of the cache associated with that byte being updated.
- this can have the effect of tying up bandwidth between the memory (or a memory manager) and the processor where the bandwidth is such that several cycles are required to transfer the entire word or line to the cache. It would be desirable to provide a mechanism for updating a cache that improved cache update speed and/or efficiency.
- One form of attacking a secure chip is to induce (usually by increasing) a clock speed that takes the logic outside its rated operating frequency.
- One way of doing this is to reduce the temperature of the integrated circuit, which can cause the clock to race. Above a certain frequency, some logic will start malfunctioning. In some cases, the malfunction can be such that information on the chip that would otherwise be secure may become available to an external connection. It would be desirable to protect an integrated circuit from such attacks.
- a power failure can result in unintentional behaviour. For example, if an address or data becomes unreliable due to falling voltage supplied to the circuit but there is still sufficient power to cause a write, incorrect data can be written. Even worse, the data (incorrect or not) could be written to the wrong memory. The problem is exacerbated with multi-word writes. It would be desirable to provide a mechanism for reducing or preventing spurious writes when power to an integrated circuit is failing.
- the memory includes a key or some other form of security information that allows the integrated circuit to communicate with another entity (such as another integrated circuit, for example) in a secure manner. It would be particularly advantageous to prevent attacks involving direct probing of memory addresses by physically investigating the chip (as distinct from electronic or logical attacks via manipulation of signals and power supplied to the integrated circuit).
- ink quality can be a major issue, since the attributes of inks used by a given printhead can be quite specific. Use of incorrect ink can result in anything from misfiring or poor performance to damage or destruction of the printhead. It would therefore be desirable to provide a system that enables authentication of the correct ink being used, as well as providing various support systems secure enabling refilling of ink cartridges.
- a symmetric encryption algorithm is one where:
- K 1 equals K 2 .
- K 2 the number of keys that can be derived from the other.
- K The security of these algorithms rests very much in the key K.
- K allows anyone to encrypt or decrypt. Consequently K must remain a secret for the duration of the value of M.
- M may be a wartime message “My current position is grid position 123-456”. Once the war is over the value of M is greatly reduced, and if K is made public, the knowledge of the combat unit's position may be of no relevance whatsoever.
- the security of the particular symmetric algorithm is a function of two things: the strength of the algorithm and the length of the key.
- An asymmetric encryption algorithm is one where:
- Symmetric and asymmetric schemes both suffer from a difficulty in allowing establishment of multiple relationships between one entity and a two or more others, without the need to provide multiple sets of keys. For example, if a main entity wants to establish secure communications with two or more additional entities, it will need to maintain a different key for each of the additional entities. For practical reasons, it is desirable to avoid generating and storing large numbers of keys. To reduce key numbers, two or more of the entities may use the same key to communicate with the main entity. However, this means that the main entity cannot be sure which of the entities it is communicating with. Similarly, messages from the main entity to one of the entities can be decrypted by any of the other entities with the same key. It would be desirable if a mechanism could be provided to allow secure communication between a main entity and one or more other entities that overcomes at least some of the shortcomings of prior art.
- first entity In a system where a first entity is capable of secure communication of some form, it may be desirable to establish a relationship with another entity without providing the other entity with any information related the first entity's security features.
- security features might include a key or a cryptographic function. It would be desirable to provide a mechanism for enabling secure communications between a first and second entity when they do not share the requisite secret function, key or other relationship to enable them to establish trust.
- the integrated circuit includes non-volatile memory, and (c) includes storing the trim value in the memory.
- the memory is flash RAM.
- step (d) includes loading the trim value from the memory into a register and using the trim value in the register to control a frequency of the internal clock.
- the trim value is determined and stored permanently in the integrated circuit. More preferably, the circuit includes one or more fuses that are intentionally blown following step (c), thereby preventing the stored trim value from subsequently being changed.
- the system clock further includes a voltage controlled oscillator (VCO), an output frequency of which is controlled by the trim value.
- VCO voltage controlled oscillator
- the integrated circuit further includes a digital to analog convertor configured to convert the trim value to a voltage and supply the voltage to an input of the VCO, thereby to control the output frequency of the VCO.
- the integrated circuit is configured to operate under conditions in which the signal for which the number of cycles is being determined is at a considerably higher frequency than the other signal.
- the integrated circuit is configured to operate when a ratio of the number of cycles determined in step (b) and the predetermined number of cycles is greater than about 2. It is particularly preferred that the ratio is greater than about 4.
- the integrated circuit is disposed in a package having an external pin for receiving the external signal. More preferably, the pin is a serial communication pin configurable for serial communication when the trim value is not being set.
- the trim value was also determined on the basis of a compensation factor that took into account a temperature of the integrated circuit when the number of cycles are being determined.
- the trim value is determined by performing a number of iterations of determining the number of cycles, and averaging the determined number.
- FIG. 1 is an example of a single printer controller (hereinafter “SoPEC”) A4 simplex printer system
- FIG. 2 shows a SoPEC system top level partition
- FIG. 3 shows clock filter
- FIG. 4 shows tamper detection line
- FIG. 5 shows an oversize nMOS transistor layout of Tamper Detection Line
- FIG. 6 shows a Tamper Detection Line
- FIG. 7 shows how Tamper Detection Lines cover the Noise Generator
- FIG. 8 shows a prior art FET Implementation of CMOS inverter
- FIG. 9 shows a high level block diagram of QA Chip
- FIG. 10 shows an analogue unit
- FIG. 11 shows a serial bus protocol for trimming
- FIG. 12 shows a block diagram of a trim unit
- FIG. 13 shows a block diagram of a CPU of the QA chip
- FIG. 14 shows block diagram of an MIU
- FIG. 15 shows a block diagram of memory components
- FIG. 16 shows a first byte sent to an IOU
- FIG. 17 shows a block diagram of the IOU
- FIG. 18 shows a relationship between external SDa and SClk and generation of internal signals
- FIG. 19 shows block diagram of ALU
- FIG. 20 shows a block diagram of DataSel
- FIG. 21 shows a block diagram of ROR
- FIG. 22 shows a block diagram of the ALU's IO block
- FIG. 23 shows a block diagram of PCU
- FIG. 24 shows a block diagram of an Address Generator Unit
- FIG. 25 shows a block diagram for a Counter Unit
- FIG. 26 shows a block diagram of PMU
- FIG. 27 shows a state machine for PMU
- FIG. 28 shows a block diagram of MRU
- FIG. 29 shows simplified MAU state machine
- FIG. 30 shows power-on reset behaviour
- FIG. 31 shows a ring oscillator block diagram
- FIG. 32 shows a system clock duty cycle
- Imperative phrases such as “must”, “requires”, “necessary” and “important” (and similar language) should be read as being indicative of being necessary only for the preferred embodiment actually being described. As such, unless the opposite is clear from the context, imperative wording should not be interpreted as such. None in the detailed description is to be understood as limiting the scope of the invention, which is intended to be defined as widely as is defined in the accompanying claims.
- the preferred embodiment of the present invention is implemented in a printer using microelectromechanical systems (MEMS) printheads.
- the printer can receive data from, for example, a personal computer such as an IBM compatible PC or Apple computer. In other embodiments, the printer can receive data directly from, for example, a digital still or video camera.
- MEMS microelectromechanical systems
- the particular choice of communication link is not important, and can be based, for example, on USB, Firewire, Bluetooth or any other wireless or hardwired communications protocol.
- SoPEC Small office home office Print Engine Controller
- SoPEC ASIC Application Specific Integrated Circuit
- the SoPEC ASIC is intended to be a low cost solution for bi-lithic printhead control, replacing the multichip solutions in larger more professional systems with a single chip.
- the increased cost competitiveness is achieved by integrating several systems such as a modified PEC1 printing pipeline, CPU control system, peripherals and memory sub-system onto one SoC ASIC, reducing component count and simplifying board design.
- Bi-lithic printhead Refers to printhead constructed from 2 printhead ICs
- CPU Refers to CPU core, caching system and MMU.
- ISI-Bridge chip A device with a high speed interface (such as USB2.0, Ethernet or IEEE1394) and one or more ISI interfaces.
- the ISI-Bridge would be the ISIMaster for each of the ISI buses it interfaces to.
- ISIMaster The ISIMaster is the only device allowed to initiate communication on the Inter Sopec Interface (ISI) bus.
- the ISIMaster interfaces with the host.
- ISISlave Multi-SoPEC systems will contain one or more ISISlave SoPECs connected to the ISI bus. ISISlaves can only respond to communication initiated by the ISIMaster.
- LEON Refers to the LEON CPU core.
- Tag Refers to pattern which encodes information about its position and orientation which allow it to be optically located and its data contents read.
- a bi-lithic printhead produces 1600 dpi bi-level dots. On low-diffusion paper, each ejected drop forms a 22.5 m diameter dot. Dots are easily produced in isolation, allowing dispersed-dot dithering to be exploited to its fullest. Since the bi-lithic printhead is the width of the page and operates with a constant paper velocity, color planes are printed in perfect registration, allowing ideal dot-on-dot printing. Dot-on-dot printing minimizes ‘muddying’ of midtones caused by inter-color bleed.
- a page layout may contain a mixture of images, graphics and text. Continuous-tone (contone) images and graphics are reproduced using a stochastic dispersed-dot dither. Unlike a clustered-dot (or amplitude-modulated) dither, a dispersed-dot (or frequency-modulated) dither reproduces high spatial frequencies (i.e. image detail) almost to the limits of the dot resolution, while simultaneously reproducing lower spatial frequencies to their full color depth, when spatially integrated by the eye.
- a stochastic dither matrix is carefully designed to be free of objectionable low-frequency patterns when tiled across the image. As such its size typically exceeds the minimum size required to support a particular number of intensity levels (e.g. 16 ⁇ 16 ⁇ 8 bits for 257 intensity levels).
- Human contrast sensitivity peaks at a spatial frequency of about 3 cycles per degree of visual field and then falls off logarithmically, decreasing by a factor of 100 beyond about 40 cycles per degree and becoming immeasurable beyond 60 cycles per degree [25][25]. At a normal viewing distance of 12 inches (about 300 mm), this translates roughly to 200-300 cycles per inch (cpi) on the printed page, or 400-600 samples per inch according to Nyquist's theorem.
- contone resolution above about 300 ppi is of limited utility outside special applications such as medical imaging.
- Black text and graphics are reproduced directly using bi-level black dots, and are therefore not anti-aliased (i.e. low-pass filtered) before being printed. Text should therefore be supersampled beyond the perceptual limits discussed above, to produce smoother edges when spatially integrated by the eye. Text resolution up to about 1200 dpi continues to contribute to perceived text sharpness (assuming low-diffusion paper, of course).
- a Netpage printer may use a contone resolution of 267 ppi (i.e. 1600 dpi 6), and a black text and graphics resolution of 800 dpi.
- a high end office or departmental printer may use a contone resolution of 320 ppi (1600 dpi/5) and a black text and graphics resolution of 1600 dpi. Both formats are capable of exceeding the quality of commercial (offset) printing and photographic reproduction.
- the SoPEC device can be used in several printer configurations and architectures.
- SoPEC system on a chip
- SoC system on a chip
- the PEP reads compressed page store data from the embedded memory, optionally decompresses the data and formats it for sending to the printhead.
- the print engine pipeline functionality includes expanding the page image, dithering the contone layer, compositing the black layer over the contone layer, rendering of Netpage tags, compensation for dead nozzles in the printhead, and sending the resultant image to the bi-lithic printhead.
- SoPEC contains an embedded CPU for general purpose system configuration and management.
- the CPU performs page and band header processing, motor control and sensor monitoring (via the GPIO) and other system control functions.
- the CPU can perform buffer management or report buffer status to the host.
- the CPU can optionally run vendor application specific code for general print control such as paper ready monitoring and LED status update.
- a 2.5 Mbyte embedded memory buffer is integrated onto the SoPEC device, of which approximately 2 Mbytes are available for compressed page store data.
- a compressed page is divided into one or more bands, with a number of bands stored in memory. As a band of the page is consumed by the PEP for printing a new band can be downloaded. The new band may be for the current page or the next page.
- An Storage SoPEC acting as a memory buffer or an ISI-Bridge chip with attached DRAM could be used to provide guaranteed data delivery.
- the embedded USB 1.1 device accepts compressed page data and control commands from the host PC, and facilitates the data transfer to either embedded memory or to another SoPEC device in multi-SoPEC systems.
- the printhead is constructed by abutting 2 printhead ICs together.
- the printhead ICs can vary in size from 2 inches to 8 inches, so to produce an A4 printhead several combinations are possible. For example two printhead ICs of 7 inches and 3 inches could be used to create a A4 printhead (the notation is 7:3). Similarly 6 and 4 combination (6:4), or 5:5 combination.
- For an A3 printhead it can be constructed from 8:6 or an 7:7 printhead IC combination.
- For photographic printing smaller printheads can be constructed.
- Each SoPEC device has 2 LSS system buses for communication with QA devices for system authentication and ink usage accounting.
- the number of QA devices per bus and their position in the system is unrestricted with the exception that PRINTER_QA and INK_QA devices should be on separate LSS busses.
- Each SoPEC system can have several QA devices. Normally each printing SoPEC will have an associated PRINTER_QA. Ink cartridges will contain an INK_QA IC. PRINTER_QA and INK_QA devices should be on separate LSS busses. All QA ICs in the system are physically identical with flash memory contents defining PRINTER_QA from INK_QA IC.
- the Inter-SoPEC Interface provides a communication channel between SoPECs in a multi-SoPEC system.
- the ISIMaster can be SoPEC device or an ISI-Bridge chip depending on the printer configuration. Both compressed data and control commands are transferred via the interface.
- a device other than a SoPEC with a USB connection, which provides print data to a number of slave SoPECs.
- a bridge chip will typically have a high bandwidth connection, such as USB 2.0, Ethernet or IEEE1394, to a host and may have an attached external DRAM for compressed page storage.
- a bridge chip would have one or more ISI interfaces. The use of multiple ISI buses would allow the construction of independent print systems within the one printer. The ISI-Bridge would be the ISIMaster for each of the ISI buses it interfaces to.
- the Small Office Home Office Print Engine Controller is a page rendering engine ASIC that takes compressed page images as input, and produces decompressed page images at up to 6 channels of bi-level dot data as output.
- the bi-level dot data is generated for the Memjet bi-lithic printhead.
- the dot generation process takes account of printhead construction, dead nozzles, and allows for fixative generation.
- a single SoPEC can control 2 bi-lithic printheads and up to 6 color channels at 10,000 lines/sec, equating to 30 pages per minute at 1600 dpi.
- a single SoPEC can perform full-bleed printing of A3, A4 and Letter pages.
- the 6 channels of colored ink are the expected maximum in a consumer SOHO, or office Bi-lithic printing environment:
- SoPEC is color space agnostic. Although it can accept contone data as CMYX or RGBX, where X is an optional 4th channel, it also can accept contone data in any print color space.
- SoPEC provides a mechanism for arbitrary mapping of input channels to output channels, including combining dots for ink optimization, generation of channels based on any number of other channels etc.
- inputs are typically CMYK for contone input, K for the bi-level input, and the optional Netpage tag dots are typically rendered to an infra-red layer.
- a fixative channel is typically generated for fast printing applications.
- SoPEC is resolution agnostic. It merely provides a mapping between input resolutions and output resolutions by means of scale factors. The expected output resolution is 1600 dpi, but SoPEC actually has no knowledge of the physical resolution of the Bi-lithic printhead.
- SoPEC is page-length agnostic. Successive pages are typically split into bands and downloaded into the page store as each band of information is consumed and becomes free.
- SoPEC provides an interface for synchronization with other SoPECs. This allows simple multi-SoPEC solutions for simultaneous A3/A4/Letter duplex printing. However, SoPEC is also capable of printing only a portion of a page image. Combining synchronization functionality with partial page rendering allows multiple SoPECs to be readily combined for alternative printing requirements including simultaneous duplex printing and wide format printing.
- a printline for an A4 page consists of 13824 nozzles across the page [2].
- 13824 dots of data can be generated in 86.4 seconds. Therefore data can be generated fast enough to meet the printing speed requirement. It is necessary to deliver this print data to the print-heads.
- Printheads can be made up of 5:5, 6:4, 7:3 and 8:2 inch printhead combinations [2]. Print data is transferred to both print heads in a pair simultaneously. This means the longest time to print a line is determined by the time to transfer print data to the longest print segment. There are 9744 nozzles across a 7 inch printhead. The print data is transferred to the printhead at a rate of 106 MHz (2 ⁇ 3 of the system clock rate) per color plane. This means that it will take 91.9 s to transfer a single line for a 7:3 printhead configuration. So we can meet the requirement of 30 sheets per minute printing with a 4 cm gap with a 7:3 printhead combination. There are 11160 across an 8 inch printhead. To transfer the data to the printhead at 106 MHz will take 105.3 s. So an 8:2 printhead combination printing with an inter-sheet gap will print slower than 30 sheets per minute.
- DRAM DIU DRAM interface Provides the interface for DRAM read and unit write access for the various SoPEC units, CPU and the SCB block.
- the DIU provides arbitration between competing units controls DRAM access.
- DRAM Embedded DRAM 20 Mbits of embedded DRAM, CPU CPU Central Processing CPU for system configuration and control Unit MMU Memory Limits access to certain memory address Management Unit areas in CPU user mode
- RDU Real-time Debug Facilitates the observation of the contents Unit of most of the CPU addressable registers in SoPEC in addition to some pseudo-registers in realtime.
- TIM General Timer Contains watchdog and general system timers LSS Low Speed Serial Low level controller for interfacing with Interfaces the QA ICs GPIO General Purpose IOs General IO controller, with built-in Motor control unit, LED pulse units and de-glitch circuitry ROM Boot ROM 16 KBytes of System Boot ROM code ICU Interrupt Controller General Purpose interrupt controller with Unit configurable priority, and masking.
- CPR Clock, Power and Central Unit for controlling and generating Reset block the system clocks and resets and powerdown mechanisms PSS Power Save Storage Storage retained while system is powered down USB Universal Serial Bus USB device controller for interfacing with Device the host USB.
- TFU Tag FIFO Unit Provides tag data storage between TE and HCU HCU Halftoner Dithers contone layer and composites the compositor unit bi-level spot 0 and position tag dots.
- DNC Dead Nozzle Compensates for dead nozzles by color Compensator redundancy and error diffusing dead nozzle data into surrounding dots.
- DWU Dotline Writer Unit Writes out the 6 channels of dot data for a given printline to the line store
- DRAM LLU Line Loader Unit Reads the expanded page image from line store, formatting the data appropriately for the bi-lithic printhead.
- PHI PrintHead Interface Is responsible for sending dot data to the bi- lithic printheads and for providing line synchronization between multiple SoPECs. Also provides test interface to printhead such as temperature monitoring and Dead Nozzle Identification.
- SoPEC Communication between SoPEC and the QA ICs (i.e. INK_QA and PRINTER_QA) will take place on at least a per power cycle and per page basis.
- Communication with the QA ICs has three principal purposes: validating the presence of genuine QA ICs (i.e the printer is using approved consumables), validation of the amount of ink remaining in the cartridge and authenticating the operating parameters for the printer.
- SoPEC is expected to communicate the number of dots fired per ink plane to the QA chipset. SoPEC may also initiate decoy communications with the QA ICs from time to time.
- the authentication chip circuitry is designed to operate within a specific clock speed range. Since the user directly supplies the clock signal, it is possible for an attacker to attempt to introduce race-conditions in the circuitry at specific times during processing. An example of this is where a high clock speed (higher than the circuitry is designed for) may prevent an XOR from working properly, and of the two inputs, the first may always be returned. These styles of transient fault attacks can be very efficient at recovering secret key information. The lesson to be learned from this is that the input clock signal cannot be trusted.
- the input clock signal cannot be trusted, it must be limited to operate up to a maximum frequency. This can be achieved a number of ways.
- One way to filter the clock signal is to use an edge detect unit passing the edge on to a delay, which in turn enables the input clock signal to pass through.
- FIG. 3 shows clock signal flow within the Clock Filter.
- the filtered clock signal would be further divided internally as required.
- Active Mode causes execution of program code previously stored in the flash memory via Program Mode.
- the QA IC starts up in Idle Mode when the fuse has not yet been blown, and returns to Idle Mode after the completion of another mode.
- the QA IC waits for a command from the master by watching the low speed serial line for an id that matches either the global id (0x00), or the chip's local id.
- Trim Mode is enabled by sending a global id byte (0x00) followed by the Trim Mode command byte (0xAB). Trim Mode can only be entered while the fuse has not yet been blown.
- the internal trim register setting is set to a known value r.
- the external user can now perform the following operations:
- the trim register will be v, and the external user will know the relationship between external time t and internal time c. Therefore a new value for v can be calculated.
- the Trim Mode procedure can be repeated a number of times, varying both t and v in known ways, measuring the resultant c.
- the final value for v is established (and stored in the trim register for subsequent use in Program Mode).
- This value v must also be written to the flash for later use (every time the chip is placed in Active Mode for the first time after power-up).
- Program Mode is enabled by sending a global id byte (0x00) followed by the Program Mode command byte.
- the chip enters Program Mode and erases the entire contents of Flash memory.
- the QA IC then validates the erasure. If the erasure was successful, the QA IC receives up to 4096 bytes of data corresponding to the new program code and variable data. The bytes are transferred in order byte 0 to byte 4095 .
- Trim Mode functionality must be performed before a chip enters Program Mode for the first time. Otherwise the erasure and write durations could be incorrect.
- the LSS Master must wait for 80 s (the time taken to write two bytes to flash at nybble rates) before sending the new transaction (e.g. Active Mode). Otherwise the last nybbles may not be written to flash. Directly after manufacture the flash memory will be invalid and the fuse will not have been blown. Therefore power-on-reset will not cause Active Mode. Trim Mode must therefore be entered first, and only after a suitable trim value is found, should Program Mode be entered to store a program. Active Mode can be entered if the program is known to be valid.
- a number of registers are defined for use by the CPU. They are used for control, temporary storage, arithmetic functions, counting and indexing, and for I/O.
- registers do not need to be kept in non-volatile (Flash) memory. They can be read or written without the need for an erase cycle (unlike Flash memory). Temporary storage registers that contain secret information still need to be protected from physical attack by Tamper Prevention and Detection circuitry and parity checks.
- WriteMask 0 is used to determine whether a read of invalid data is replaced by the upper nybble of WriteMask. If 0, a read of invalid data is not replaced, and the chip hangs until a new command is issued over the serial interface. If 1, a read of invalid data is replaced by the upper nybble of the WriteMask. Thus a WriteMask setting of 0 (reset setting) means that no writes will occur to flash, and all reads are not replaced (causing the program to hang if an invalid value is encountered).
- registers are defined for communication between the master and the QA IC. These registers are LocalId, InByte and OutByte.
- a single 8-bit Trim register is used to trim the ring oscillator clock speed.
- the register has a known value of 0x00 during reset to ensure that reads from flash will succeed at the fastest process corners, and can be set in one of two ways:
- the PC and PCRamSel Whenever the chip is powered up, or receives a ‘write’ command over the serial interface, the PC and PCRamSel get set to 0 and execution begins at 0 in Flash memory.
- the program (starting at 0) needs to determine how the program was started by reading the InByte register. If the first byte read is 0xFF, the chip is being requested to perform software reset tasks. Execution of software reset can only be interrupted by a power down.
- the reset tasks include setting up RAM to contain known startup state information, setting up Trim and localID registers etc.
- the CPU signals that it is now ready to receive commands from an external device by writing to the OutByte register.
- An external Master is able to read the OutByte (and any further outbytes that the CPU decides to send) if it so wishes by a read using the localId. Otherwise the first byte read will be of the form where the least significant bit is 0, and bits 7 - 1 contain the localId of the device as read over the serial interface. This byte is usually discarded since it nominally only has a value of differentiation against a software reset request. The second and subsequent bytes contain the data message of a write using the localId. The CPU can prevent interruption during execution by writing 0 to the localId and then restoring the desired localId at the later stage.
- the CPU operates on 8-bit instructions and typically on 32-bit data items. Each instruction typically consists of an opcode and operand, although the number of bits allocated to opcode and operand varies between instructions.
- the opcodes are summarized in Table 3:
- Table 4 is a summary of valid operands for each opcode. The table is ordered alphabetically by opcode mnemonic.
- the CPU supports a set of addressing modes as follows:
- Immediate addressing relies on 3 bits of operand, plus an optional 8 bits at PC+1 to determine an 8-bit base value. Bits 0 to 1 of the opcode byte determine whether the base value comes from the opcode byte itself, or from PC+1, as shown in Table 5.
- the base value is computed by using CMD 0 as bit 0 , and copying CMD 1 into the upper 7 bits.
- the resultant 8 bit base value is then used as a 32-bit value, with 0s in the upper 24 bits, or the 8-bit value is replicated into the upper 32 bits.
- the selection is determined by bit 2 of the opcode byte, as follows:
- Opcodes that support immediate addressing are LD, ADD, XOR, AND, OR.
- the SC and LIA instructions are also immediate in that they store the data with the opcode, but they are not in the same form as that described here. See the detail on the individual instructions for more information.
- Double byte examples include:
- the Accumulator holds the effective address.
- Opcodes that support Accumulator indirect addressing are JPI, JSI and ERA.
- JPI and JSI the Accumulator holds the address to jump to.
- ERA the Accumulator holds the address of the page in flash memory to be erased.
- Examples include:
- address register A0 In indirect fixed form of addressing, address register A0 is used as a base address, and then a specific fixed offset is added to the base address to give the effective address.
- Bits 2 - 0 of the opcode byte specify the fixed offset from A0, which means the fixed offset has a range of 0 to 7.
- Opcodes that support indirect indexed addressing are LD, ST, ADD, XOR, AND, OR.
- Examples include:
- an address register is used as a base address, and then an index register is used to offset from that base address to give the effective address.
- the address register is one of 4, and is selected via bits 2 - 1 of the opcode byte as follows:
- Bit 0 of the opcode byte selects whether index register C1 or C2 is used:
- the counter is selected as follows:
- Opcodes that support indirect indexed addressing are LD, ST, ADD, XOR.
- Examples include:
- the ROR instruction provides a way of rotating the Accumulator right a set number of bits.
- the bit(s) coming in at the top of the Accumulator (to become bit 31 ) can either come from the previous lower bits of the Accumulator, from the serial connection, or from external flags.
- the bit(s) rotated out can also be output from the serial connection, or combined with an external flag.
- the Z flag is also set during this operation, depending on whether resultant 32-bit value (loaded into the Accumulator) is zero or not.
- the operand for the ROR instruction is one of 1, 3, 8, 24, 31, indicating how many bit positions the Accumulator should be rotated. For these operands, there is no external input or output—the bits of the Accumulator are merely rotated right. Note that these values are the equivalent to rotating left 31, 29, 24, 8, 1 bit positions.
- operand WriteMask the lower 8 bits of the Accumulator are transferred to the WriteMask register, and the Accumulator is rotated right by 1 bit. This conveniently allows successive nybbles to be masked during Flash writes if the Accumulator has been preloaded with an appropriate value (eg 0x01).
- the 7 low-order bits are transferred from the Accumulator to the LocalId register, the low-order 8 bits of the Accumulator are copied to the Trim register if the Trim register has not already been written to after power-on reset, and the Accumulator is rotated right by 8 bits.
- the ROR ID instruction needs to be performed twice, typically during Global Active Mode—once to set Trim, and once to set LocalId. Note there is no way to read the contents of the localId or Trim registers directly.
- the LocalId sent to the program for a command is available as bits 7 - 1 of the first byte obtained from InByte after program startup.
- operand InByte With operand InByte, the next serial input byte is transferred to the highest 8 bits of the Accumulator. The InByteValid bit is also cleared. If there is no input byte available from the client yet, execution is suspended until there is one. The remainder of the Accumulator is shifted right 8 bit positions (bit 31 becomes bit 23 etc.), with lowest bits of the Accumulator shifted out. With operand OutByte, the Accumulator is shifted right 8 bit positions. The byte shifted out from bits 7 - 0 is stored in the OutByte register and the OutByteValid flag is set. It is therefore ready for a client to read.
- the RB and XRB operands allow the implementation of LFSRs and multiple precision shift registers.
- bit shifted out (formally bit 0 ) is written to the RTMP register.
- the register currently in the RTMP register becomes the new bit 31 of the Accumulator.
- Performing multiple ROR RB commands over several 32-bit values implements a multiple precision rotate/shift right.
- the XRB operates in the same way as RB, in that the current value in the RTMP register becomes the new bit 31 of the Accumulator.
- the bit formally known as bit 0 does not simply replace RTMP (as in the RB instruction).
- SysClk is different to SClk.
- SysClk is derived from an internal ring oscillator based on the process technology.
- SysClk is obtained via a 5th pin.
- the QA IC uses a 0.25 m CMOS Flash process for an area of 1 mm 2 yielding a 10 cent manufacturing cost in 2002. A breakdown of area is listed in Table 11.
- the chip performs a RESET upon power-up.
- tamper detection and prevention circuitry in the chip will cause the chip to either RESET or erase Flash memory (depending on the attack detected) if an attack is detected.
- the base operating system clock SysClk is generated internally from a ring oscillator (process dependant). Since the frequency varies with operating temperature and voltage, the clock is passed through a temperature-based clock filter before use. The frequency is built into the chip during manufacture, and cannot be changed. The frequency is in the range 7-14 MHz.
- the QA IC is implemented with a standard Flash manufacturing process. It is important that a Flash process be used to ensure that good endurance is achieved (parts of the Flash memory can be erased/written many times).
- the operating clock of the chip should be generated internally. This can be conveniently accomplished by an internal ring oscillator. The length of the ring depends on the process used for manufacturing the chip.
- the clock needs to be trimmed to bring it into a range usable for timing of Flash memory writes and erases.
- the internal clock should also contain a small amount of randomization to prevent attacks where light emissions from switching events are captured, as described below.
- the generated clock must be passed through a temperature-based clock filter before being used by the rest of the chip.
- the resultant power-ground short circuit causes a temporary increase in the current, and in fact accounts for around 20% of current consumed by a CMOS device.
- a small amount of infrared light is emitted during the short circuit, and can be viewed through the silicon substrate (silicon is transparent to infrared light).
- a small amount of light is also emitted during the charging and discharging of the transistor gate capacitance and transmission line capacitance.
- the QA IC circuitry is designed to operate within a specific clock speed range.
- the clock is generated by an internal ring oscillator, the speed varies with temperature and power. Since the user supplies the temperature and power, it is possible for an attacker to attempt to introduce race-conditions in the circuitry at specific times during processing.
- An example of this is where a low temperature causes a clock speed higher than the circuitry is designed for, and this may prevent an XOR from working properly, and of the two inputs, the first may always be returned. The lesson to be learned from this is that the input power and operating temperature cannot be trusted.
- the chip contains a specific power filter, we must also filter the clock. This can be achieved with a temperature sensor that allows the clock pulses through only when the temperature range is such that the chip can function correctly.
- the filtered clock signal would be further divided internally as required.
- FIG. 9 shows a high level block diagram of the QA IC. Note that the tamper prevention and detection circuitry is not shown.
- FIG. 10 shows a block diagram of the Analogue Unit. Blocks shown in yellow provide additional protection against physical and electrical attack and, depending on the level of security required, may optionally be implemented.
- the operating clock of the chip (SysClk) is generated by an internal ring oscillator whose frequency can be trimmed to reduce the variation from 4:1 (due to process and temperature) down to 2:1 (temperature variations only) in order to satisfy the timing requirements of the Flash memory.
- the length of the ring depends on the process used for manufacturing the chip. A nominal operating frequency range of 10 MHz is sufficient. This clock should contain a small amount of randomization to prevent attacks where light emissions from switching events are captured.
- the ring oscillator is covered by both Tamper Detection and Prevention lines so that if an attacker attempts to tamper with the unit, the chip will either RESET or erase all secret information.
- the voltage reference block maintains an output which is substantially independant of process, supply voltage and temperature. It provides a reference voltage which is used by the PDU and a reference current to stabilise the ring oscillator. It may also be used as part of the temperature based clock filter.
- the Under Voltage Detection Unit provides the signal PwrFailing which, if asserted, indicates that the power supply may be turning off. This signal is used to rapidly terminate any Flash write that may be in progress to avoid accidentally writing to an indeterminate memory location. Note that the PDU triggers the RESET Tamper Detection Line only. It does not trigger the Erase Tamper Detection Line.
- the PDU can be implemented with regular CMOS, since the key does not pass through this unit. It does not have to be implemented with non-flashing CMOS.
- the PDU is covered by both Tamper Detection and Prevention lines so that if an attacker attempts to tamper with the unit, the chip will either RESET or erase all secret information.
- the Noise Generator is based on a 64-bit maximal period LFSR loaded with a set non-zero bit pattern on RESET.
- the NG must be protected by both Tamper Detection and Prevention lines so that if an attacker attempts to tamper with the unit, the chip will either RESET or erase all secret information.
- the bits in the LFSR must be validated to ensure they have not been tampered with (i.e. a parity check). If the parity check fails, the Erase Tamper Detection Line is triggered. Finally, all 64 bits of the NG are ORed into a single bit. If this bit is 0, the Erase Tamper Detection Line is triggered. This is because 0 is an invalid state for an LFSR.
- the 8-bit Trim register within the Trim Unit has a reset value of 0x00 (to enable the flash reads to succeed even in the fastest process corners), and is written to either by the PMU during Trim Mode or by the CPU in Active Mode. Note that the CPU is only able to write once to the Trim register between power-on-reset due to the TrimDone flag which provides overloading of LocalIdWE.
- the reset value of Trim (0) means that the chip has a nominal frequency of 2.7 MHz-10 MHz.
- the upper of the range is when we cannot trim it lower than this (or we could allow some spread on the acceptable trimmed frequency but this will reduce our tolerance to ageing, voltage and temperature which is the range 7 MHz to 14 MHz).
- the frequency of the ring oscillator is measured by counting cycles, in the PMU, over the byte period of the serial interface.
- the PMU counts using 12-bits, saturates at 0xFFF, and returns the cycle count divided by 2 as an 8-bit value.
- the frequency of the serial clock, SClk, and therefore the byte period will be accurately controlled during the measurement.
- the cycle count (Fmeas) at the end of the period is read over the serial bus and the Trim register updated (Trimval) from its power on default (POD) value. The steps are shown in FIG. 11 . Multiple measure-read-trim cycles are possible to improve the accuracy of the trim procedure.
- a single byte for both Fmeas and Trimval provide sufficient accuracy for measurement and trimming of the frequency. If the bus operates at 400 kHz, a byte (8 bits) can be sent in 20 s. By dividing the maximum oscillator frequency, expected to be 20 MHz, by 2 results in a cycle count of 200 and 50 for the minimum frequency of 5 MHz resulting in a worst case accuracy of 2%.
- FIG. 12 shows a block diagram of the Trim Unit:
- the 8-bit Trim value is used in the analog Trim Block to adjust the frequency of the ring oscillator by controlling its bias current.
- the two lsbs are used as a voltage trim, and the 6 msbs are used as a frequency trim.
- the analog Trim Clock circuit also contains a Temperature filter.
- the QA IC acts as a slave device, accepting serial data from an external master via the IO Unit (IOU). Although the IOU actually transmits data over a 1-bit line, the data is always transmitted and received in 1-byte chunks.
- IOU IO Unit
- the IOU receives commands from the master to place it in a specific operating mode, which is one of:
- the Central Processing Unit (CPU) block provides the majority of the circuitry of the 4-bit microprocessor.
- FIG. 13 shows a high level view of the block.
- the Memory Interface Unit provides the interface to flash and RAM.
- the MIU contains a Program Mode Unit that allows flash memory to be loaded via the IOU, a Memory Request Unit that maps 8-bit and 32-bit requests into multiple byte based requests, and a Memory Access Unit that generates read/write strobes for individual accesses to the memory.
- FIG. 14 shows a high level view of the MIU block.
- the Memory Components block isolates the memory implementation from the rest of the QA IC.
- the entire contents of the Memory Components block must be protected from tampering. Therefore the logic must be covered by both Tamper Detection Lines. This is to ensure that program code, keys, and intermediate data values cannot be changed by an attacker.
- the 8-bit wide RAM also needs to be parity-checked.
- FIG. 15 shows a high level view of the Memory Components block. It consists of 8 KBytes of flash memory and 3072 bits of parity checked RAM.
- the RAM block is shown here as a simple 96 ⁇ 32-bit RAM (plus parity included for verification).
- the parity bit is generated during the write.
- the RAM is in an unknown state after RESET, so program code cannot rely on RAM being 0 at startup.
- the initial version of the ASIC has the RAM implemented by Artisan component RA1SH (96 ⁇ 32-bit RAM without parity). Note that the RAMOutEn port is active low i.e. when 0, the RAM is enabled, and when 1, the RAM is disabled.
- Flash memory block is used to hold all non-volatile data. This includes program code and variables.
- the Flash memory block is implemented by TSMC component SFC0008 — 08B9_HE, which has the following characteristics:
- the FlashCtrl line are the various inputs on the SFC0008-08B9_HE required to read and write bytes, erase pages and erase the device. A total of 9 bits are required.
- the two VAL units are validation units connected to the Tamper Prevention and Detection circuitry, each with an OK bit.
- the OK bit is set to 1 on PORstL, and ORed with the ChipOK values from both Tamper Detection Lines each cycle.
- the OK bit is ANDed with each data bit that passes through the unit.
- the effective byte output from the flash will always be 0 if the chip has been tampered with. This will cause shadow tests to fail, program code will not execute, and the chip will hang.
- the I/O Unit (IOU) is responsible for providing the physical implementation of the logical interface, moving between the various modes (Idle, Program, Trim and Active) according to commands sent by the master.
- the IOU therefore contains the circuitry for communicating externally with the external world via the SClk and SDa pins.
- the IOU sends and receives data in 8-bit chunks. Data is sent serially, most significant bit (bit 7 ) first through to least significant bit (bit 0 ) last.
- bit 7 most significant bit
- bit 0 least significant bit
- the IOU recognizes a global id of 0x00 and a local id of LocalId (set after the CPU has executed program code at reset or due to a global id/ActiveMode command on the serial bus).
- Subsequent bytes contain modal information in the case of global id, and command/data bytes in the case of a match with the local id.
- the IOU outputs 0s and inputs 0s if either of the Tamper Detection Lines is broken. This will only come into effect if an attacker has disabled the RESET and/or erase circuitry, since breaking either Tamper Detection Lines should result in a RESET or the erasure of all Flash memory.
- IOU's InByte, InByteValid, OutByte, and OutByteValid registers are used for communication between the master and the QA IC.
- InByte and InByteValid provide the means for clients to pass commands and data to the QA IC.
- OutByte and OutByteValid provide the means for the master to read data from the QA IC.
- FIG. 17 shows a block diagram of the IOU.
- InByteValid inputs set has priority over reset, although both set and reset in correct operation should never be asserted at the same time.
- IOSetInByte and IOLoadInByte if IOSetInByte is asserted, it will set InByte to be 0xFF regardless of the setting of IOLoadInByte.
- the two VAL units are validation units connected to the Tamper Prevention and Detection circuitry, each with an OK bit.
- the OK bit is set to 1 on PORstL, and ORed with the ChipOK values from both Tamper Detection Lines each cycle.
- the OK bit is ANDed with each data bit that passes through the unit.
- the current mode of the IOU is output as a 2-bit IOMode to allow the other units within the QA IC to take correct action.
- IOMode is defined as shown in Table 12:
- the Logic blocks generate a 1 if the current IOMode is in Program Mode, Active Mode or Trim Mode respectively.
- the logic blocks are:
- the Program Mode Unit (PMU) is responsible for Program Mode and Trim Mode operations:
- the PMU contains an 8-bit buff register that is used to hold the byte being written to flash and a 12-bit adr register that is used to hold the byte address currently being written to.
- the PMU is also used to load word 1 of the information block into a 32-bit register (combined from 8-bits of buff, 12-bits of adr, and a further 12-bit register) so it can be used to XOR all data to and from memory (both Flash and RAM) for future CPU accesses.
- This logic is activated only when the chip enters ActiveMode (so as not to access flash and possibly cause an erasure directly after manufacture since shadows will not be correct).
- the logic and 32-bit mask register is in the PMU to minimize chip area.
- the PMU therefore has an asymmetric access to flash memory:
- Circuits need to operate over the temperature range ⁇ 40° C. to +125° C.
- the unit provides power on reset, protection of the Flash memory against erroneous writes during power down (in conjunction with the MAU) and the system clock SysClk.
- the table below shows the key thresholds for V DD which define the requirements for power on reset and normal operation.
- VDD limits VDD parameter Description Voltage VDDFTmax Flash test maximum 3.6 2 VDDFTtyp Flash test typical 3.3 VDDFTmin Flash test minimum 3.0 VDDmax Normal operation maximum 2.75 3 (typ + 10%) VDDtyp Normal operation typical 2.5 VDDmin Normal operation minimum 2.375 (typ ⁇ 5%) VDDPORmax Power on reset maximum 2.0 4 2
- the voltage VDDFT may only be applied for the times specified in the TSMC Flash memory test document. 3 Voltage regulators used to derive VDD will typically have symmetric tolerance limits 4 The minimum allowable voltage for Flash memory operation. 5 Over PVT, not including offsets
- Both signals are derived by comparing scaled versions of V DD against the reference voltage V bg .
- the rising and falling edges of V DD shall be monotonic in order to guarantee correct operation of power on reset and power failing detection. Random noise may be present but should have a peak to peak amplitude of less than the hysteresis of the comparators used for detection in the PDU.
- the underL signal generates the global reset to the logic which should be de-asserted when the supply voltage is high enough for the logic and analogue circuits to operate. Since the logic reset is asynchronous, it is not necessary to ensure the clock is active before releasing the reset or to include any delay.
- the QA IC logic will start immediately the power on reset is released so this should only be done when the conditions of supply voltage and clock frequency are within limits for the correct operation of the logic.
- the maximum threshold for de-asserting the signal shall be when V DD >V DDmin .
- the minimum threshold for asserting the signal shall be V DD ⁇ V DDPORmax .
- the reset signal must be held low long enough (T pwmin ) to ensure all flip-flops are reset.
- T pwmin The standard cell data sheet gives a figure of 0.73 ns for the minimum width of the reset pulse for all flip-flop types.
- V DD voltage that can be trimmed (which gives the maximum hysterisis). This voltage should be recorded (or it may be sufficient to estimate it from the reset release voltage recorded above).
- V DD is then increased above the reset release threshold and the PDU trim adjusted to the setting the closest to V DDPORmax .
- V DD should then be lowered and the threshold at which the reset is re-asserted confirmed.
- the signal PwrFailing will be used to protect the Flash memory by turning off the charge pump during a write or page erase if the supply voltage drops below a certain threshold.
- the charge pump is expected to take about 5 us to discharge.
- the PwrFailing signal shall be protected against narrow spikes ( ⁇ 100 ns) on the power supply.
- SysClk is required to be in the range 7-14 MHz throughout the lifetime of the circuit provided V DD is maintained within the range V DDMIN ⁇ V DD ⁇ V DDMAX .
- the 2:1 range is derived from the programming time requirements of the TSMC Flash memory. If this range is exceeded, the useful lifetime of the Flash may be reduced.
- the initial frequency error must be reduced to remain within the range 10 MHz/1.41 to 10 MHz ⁇ 1.41 allowing for variation in:
- the range budget must be partitioned between these variables.
- FIG. 31 is the ring oscillator block diagram
- SysClk is derived by dividing the oscillator frequency by 5 which makes the oscillator smaller and allows the duty cycle of the clock to be better controlled.
- this block sources a current that can be programmed by the Trim signal. 6 of the available 8 trim bits will be used (trim 7-2 ) giving a clock adjustment resolution of about 250 kHz.
- the range of current should be such that the ring oscillator frequency can be adjusted over a 4 to 1 range.
- the ring oscillator will be prescaled by 5 to obtain the nominal 10 MHz clock.
- An asynchronous design may be used to save power.
- Several divided clock duty cycles are obtainable, eg 4:1, 3:2 etc.
- the following clock will be generated; most flip-flops will operate on the rising edge of the clock allowing negative edge clocking to meet memory timing.
- This block combines the overL (omitted from the current version), underL and MAURstOutL signals to provide the global reset.
- MAURstOutL is delayed by one clock cycle to ensure a reset generated when this signal is asserted has at least this duration since the reset deasserts the signal itself. It should be noted that the register, with active low reset RN, is the only one in the QA chip not connected to RstL.
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Abstract
Description
E[M]=C
D[C]=M
D[E[M]]=M
-
- the encryption function E relies on key K1,
- the decryption function D relies on key K2,
- K2 can be derived from K1, and
- K1 can be derived from K2.
EK[M]=C
DK[C]=M
-
- the encryption function E relies on key K1,
- the decryption function D relies on key K2,
- K2 cannot be derived from K1 in a reasonable amount of time, and
- K1 cannot be derived from K2 in a reasonable amount of time.
EK1[M]=C
DK2[C]=M
EK2[M]=C
DK1[C]=M
Bi-lithic printhead | Refers to printhead constructed from 2 printhead ICs |
CPU | Refers to CPU core, caching system and MMU. |
ISI-Bridge chip | A device with a high speed interface (such as USB2.0, Ethernet or |
IEEE1394) and one or more ISI interfaces. The ISI-Bridge would be the | |
ISIMaster for each of the ISI buses it interfaces to. | |
ISIMaster | The ISIMaster is the only device allowed to initiate communication on the |
Inter Sopec Interface (ISI) bus. The ISIMaster interfaces with the host. | |
ISISlave | Multi-SoPEC systems will contain one or more ISISlave SoPECs connected |
to the ISI bus. ISISlaves can only respond to communication initiated by | |
the ISIMaster. | |
LEON | Refers to the LEON CPU core. |
LineSyncMaster | The LineSyncMaster device generates the line synchronisation pulse that all |
SoPECs in the system must synchronise their line outputs to. | |
Multi-SoPEC | Refers to SoPEC based print system with multiple SoPEC devices |
Netpage | Refers to page printed with tags (normally in infrared ink). |
PEC1 | Refers to Print |
control printheads constructed from multiple angled printhead segments. | |
Printhead IC | Single MEMS IC used to construct bi-lithic printhead |
PrintMaster | The PrintMaster device is responsible for coordinating all aspects of the |
print operation. There may only be one PrintMaster in a system. | |
QA IC | Quality Assurance Integrated Circuit device/chip |
Storage SoPEC | An ISISlave SoPEC used as a DRAM store and which does not print. |
Tag | Refers to pattern which encodes information about its position and |
orientation which allow it to be optically located and its data contents read. | |
-
- One or more SoPEC devices.
- One or more bi-lithic printheads.
- Two or more low speed serial interface (LSS) busses.
- Two or more QA ICs.
- USB 1.1 connection to host or ISI connection to Bridge Chip.
- ISI bus connection between SoPECs (when multiple SoPECs are used).
-
- CMY, for regular color printing.
- K, for black text, line graphics and gray-scale printing.
- IR (infrared), for Netpage-enabled applications.
- F (fixative), to enable printing at high speed. Because the bi-lithic printer is capable of printing so fast, a fixative may be required to enable the ink to dry before the page touches the page already printed. Otherwise the pages may bleed on each other. In low speed printing environments the fixative may not be required.
300 mm×63 (dot/mm)/2 sec=105.8 seconds per line, with no inter-sheet gap.
340 mm×63 (dot/mm)/2 sec=93.3 seconds per line, with a 4 cm inter-sheet gap.
TABLE 1 |
Units within SoPEC |
Unit | ||||
Subsystem | Acronym | Unit Name | Description | |
DRAM | DIU | DRAM interface | Provides the interface for DRAM read and | |
unit | write access for the various SoPEC units, | |||
CPU and the SCB block. The DIU | ||||
provides arbitration between competing | ||||
units controls DRAM access. | ||||
DRAM | Embedded DRAM | 20 Mbits of embedded DRAM, | ||
CPU | CPU | Central Processing | CPU for system configuration and control | |
Unit | ||||
MMU | Memory | Limits access to certain memory address | ||
Management Unit | areas in CPU user mode | |||
RDU | Real-time Debug | Facilitates the observation of the contents | ||
Unit | of most of the CPU addressable registers in | |||
SoPEC in addition to some pseudo-registers | ||||
in realtime. | ||||
TIM | General Timer | Contains watchdog and general system | ||
timers | ||||
LSS | Low Speed Serial | Low level controller for interfacing with | ||
Interfaces | the QA ICs | |||
GPIO | General Purpose IOs | General IO controller, with built-in Motor | ||
control unit, LED pulse units and de-glitch | ||||
circuitry | ||||
| Boot ROM | 16 KBytes of System Boot ROM code | ||
ICU | Interrupt Controller | General Purpose interrupt controller with | ||
Unit | configurable priority, and masking. | |||
CPR | Clock, Power and | Central Unit for controlling and generating | ||
Reset block | the system clocks and resets and | |||
powerdown mechanisms | ||||
PSS | Power Save Storage | Storage retained while system is powered | ||
down | ||||
USB | Universal Serial Bus | USB device controller for interfacing with | ||
Device | the host USB. | |||
ISI | Inter-SoPEC | ISI controller for data and control | ||
Interface | communication with other SoPEC's in a | |||
multi-SoPEC system | ||||
SCB | Serial | Contains both the USB and ISI blocks. | ||
Communication | ||||
Block | ||||
PCU | PEP controller | Provides external CPU with the means to | ||
Engine | read and write PEP Unit registers, and read | |||
Pipeline | and write DRAM in single 32-bit chunks. | |||
(PEP) | ||||
CDU | Contone decoder | Expands JPEG compressed contone layer | ||
unit | and writes decompressed contone to | |||
DRAM | ||||
CFU | Contone FIFO Unit | Provides line buffering between CDU and | ||
HCU | ||||
LBD | Lossless Bi-level | Expands compressed bi-level layer. | ||
Decoder | ||||
SFU | Spot FIFO Unit | Provides line buffering between LBD and | ||
HCU | ||||
TE | Tag encoder | Encodes tag data into line of tag dots. | ||
TFU | Tag FIFO Unit | Provides tag data storage between TE and | ||
HCU | ||||
HCU | Halftoner | Dithers contone layer and composites the | ||
compositor unit | |
|||
DNC | Dead Nozzle | Compensates for dead nozzles by color | ||
Compensator | redundancy and error diffusing dead nozzle | |||
data into surrounding dots. | ||||
DWU | Dotline Writer Unit | Writes out the 6 channels of dot data for a | ||
given printline to the line store DRAM | ||||
LLU | Line Loader Unit | Reads the expanded page image from line | ||
store, formatting the data appropriately for | ||||
the bi-lithic printhead. | ||||
PHI | PrintHead Interface | Is responsible for sending dot data to the bi- | ||
lithic printheads and for providing line | ||||
synchronization between multiple SoPECs. | ||||
Also provides test interface to printhead | ||||
such as temperature monitoring and Dead | ||||
Nozzle Identification. | ||||
-
- When validating ink consumption SoPEC is expected to principally act as a conduit between the PRINTER_QA and INK_QA ICs and to take certain actions (basically enable or disable printing and report status to host PC) based on the result. The communication channels are insecure but all traffic is signed to guarantee authenticity.
Known Weaknesses - All communication to the QA ICs is over the LSS interfaces using a serial communication protocol. This is open to observation and so the communication protocol could be reverse engineered. In this case both the PRINTER_QA and INK_QA ICs could be replaced by impostor devices (e.g. a single FPGA) that successfully emulated the communication protocol. As this would require physical modification of each printer this is considered to be an acceptably low risk. Any messages that are not signed by one of the symmetric keys (such as the SoPEC_id_key) could be reverse engineered. The imposter device must also have access to the appropriate keys to crack the system.
- If the secret keys in the QA ICs are exposed or cracked then the system, or parts of it, is compromised.
Assumptions:
[1] The QA ICs are not involved in the authentication of downloaded SoPEC code
[2] The QA IC in the ink cartridge (INK_QA) does not directly affect the operation of the cartridge in any way i.e. it does not inhibit the flow of ink etc.
[3] The INK_QA and PRINTER_QA ICs are identical in their virgin state. They only become a INK_QA or PRINTER_QA after their FlashROM has been programmed.
- When validating ink consumption SoPEC is expected to principally act as a conduit between the PRINTER_QA and INK_QA ICs and to take certain actions (basically enable or disable printing and report status to host PC) based on the result. The communication channels are insecure but all traffic is signed to guarantee authenticity.
-
- Active Mode is entered on power-on Reset when the fuse has been blown, and whenever a specific authentication command arrives from the System. Program code is only executed in Active Mode. When the reset program code has finished, or the results of the command have been returned to the System, the chip enters Idle Mode to wait for the next instruction.
- Idle Mode is used to allow the chip to wait for the next instruction from the System.
- Trim Mode is used to determine the clock speed of the chip and to trim the frequency during the initial programming stage of the chip (when Flash memory is garbage). The clock frequency must be trimmed via Trim Mode before Program Mode is used to store the program code.
- Program Mode is used to load up the operating program code, and is required because the operating program code is stored in Flash memory instead of ROM (for security reasons).
-
- power-on Reset when the fuse has been blown
- receiving a command consisting of a global id write byte (0x00) followed by the ActiveMode command byte (0x06)
- receiving a command consisting of a local id byte write followed by some number of bytes representing opcode and data.
-
- If the primary id matches the global id (0x00, common to all QA ICs), and the following byte from the master is the Trim Mode id byte, and the fuse has not yet been blown, the QA IC enters Trim Mode and starts counting the number of internal clock cycles until the next byte is received. Trim Mode cannot be entered if the fuse has been blown.
- If the primary id matches the global id (0x00, common to all QA ICs), and the following byte from the master is the Program Mode id byte, and the fuse has not yet been blown, the QA IC enters Program Mode. Program Mode cannot be entered if the fuse has been blown.
- If the primary id matches the global id (0x00, common to all QA ICs), and the following byte from the master is the Active Mode id bytes, the QA IC enters Active Mode and executes startup code, allowing the chip to set itself into a state to subsequently receive authentication commands (includes setting a local id and a trim value).
- If the primary id matches the chip's local id, the QA IC enters Active Mode, allowing the subsequent command to be executed.
TABLE 2 |
Command byte values to place chip in specific mode |
Value | Interpretation |
10101011 | Trim Mode (only functions when the fuse has not been blown) |
(0xAB) | |
10001101 | Program Mode (only functions when the fuse has not been |
(0xAD) | blown) |
00000110 | Active Mode (resets the chip & loads the localId) |
(0x06) | |
-
- send the global id+write followed by the Trim Mode command byte
- send the 8-bit value v over a specified time t
- send a stop bit to signify no more data
- send the global id+read followed by the Trim Mode command byte
- receive the count c
- send a stop bit to signify no more data
-
- Reads from InByte will hang until there is 1 byte of data present from the master.
- Writes to OutByte will hang if the master has not already consumed the last OutByte.
-
- via Trim Mode, which is necessary before the QA IC is programmed for the first time; or
- via the CPU, which is necessary every time the QA IC is powered up before any flash write or erasure accesses can be carried out.
TABLE 3 |
Opcode bit pattern map |
Opcode | Mnemonic | Simple Description |
0000xxxx | JMP | Jump |
0001xxxx | JSR | Jump subroutine |
0010xxxx | TBR | Test and branch |
0011xxxx | DBR | Decrement and branch |
0100xxxx | SC | Set counter to a value |
0101xxxx | ST | Store Accumulator in specified location |
0110000x | — | reserved |
01100010 | JPZ | Jump to 0 |
01100011 | JPI | Jump indirect |
011001xx | — | reserved |
01101xxx | — | reserved |
01110000 | — | reserved |
01110001 | ERA | Erase page of flash memory pointed to by |
Accumulator | ||
01110010 | JSZ | Jump to subroutine at at 0 |
01110011 | JSI | Jump subroutine indirect |
01110100 | RTS | Return from subroutine |
01110101 | HALT | Stop the CPU |
0111011x | — | reserved |
01111xxx | LIA | Load immediate value into address register |
10000xxx | AND | Bitwise AND Accumulator |
10001xxx | OR | Bitwise OR Accumulator |
1001xxxx | XOR | Exclusive-OR Accumulator |
1010xxxx | ADD | Add a 32 bit value to the Accumulator |
1011xxxx | LD | Load Accumulator |
1100xxxx | ROR | Rotate Accumulator right |
11010xxx | AND | Bitwise AND Accumulator1 |
11011xxx | OR | Bitwise OR AccumulatorSuperscriptparanumonly |
11100xxx | XOR | Bitwise XOR AccumulatorSuperscriptparanumonly |
11101xxx | ADD | Add a 32 bit value to the |
AccumulatorSuperscriptparanumonly | ||
11110xxx | LD | Load AccumulatorSuperscriptparanumonly |
11111xxx | RIA | Rotate Accumulator into address register |
1immediate form of instruction |
TABLE 4 |
Valid operands for opcodes |
Opcode | Valid operands | ||
ADD | immediate value | ||
(A0), offset | |||
(An), {C1, C2} [where n = 0-3] | |||
AND | immediate value | ||
(A0), offset | |||
DBR | {C1, C2}, offset | ||
ERA | |||
HALT | |||
JMP | address | ||
JPI | |||
JPZ | |||
JSI | |||
JSR | address | ||
JSZ | |||
LIA | {Flash, Ram}, An [where n = 0-3], {immediate value} | ||
LD | immediate value | ||
(A0), offset | |||
(An), {C1, C2} [where n = 0-3] | |||
OR | immediate value | ||
(A0), offset | |||
RIA | {Flash, Ram}, An [where n = 0-3] | ||
ROR | {InByte, OutByte, WriteMask, ID, C1, C2, RB, XRB, | ||
1, 3, 8, 24, 31} | |||
RTS | |||
SC | {C1, C2}, {immediate value} | ||
ST | (A0), offset | ||
(An), {C1, C2} [where n = 0-3] | |||
TBR | {0, 1}, offset | ||
XOR | immediate value | ||
(A0), offset | |||
(An), {C1, C2} [where n = 0-3] | |||
-
- DEC=ADD 0xFF.
- INC=ADD 0x01
- NOT=XOR 0xFF.
- LDZ=
LD 0 - SC {C1, C2}, Acc=ROR {C1, C2}
- RD=ROR Inbyte
- WR=ROR OutByte
- LDMASK=ROR WriteMask
- LDID=ROR Id
- NOP=
XOR 0
-
- immediate
- accumulator indirect
- indirect fixed
- indirect indexed
TABLE 5 |
Selection for base value in immediate mode |
Opcode1-0 | Base value |
00 | 00000000 |
01 | 00000001 |
10 | From PC + 1 (i.e. |
MIUData7-0) | |
11 | 11111111 |
TABLE 6 |
Replicate bits selection |
Opcode2 | Data |
0 | No replication. Data has 0 in upper 24 bits and |
base Val in lower 8 |
|
1 | Replicated. Data is 32-bit value formed by |
replicating baseVal. | |
-
-
LD 0 -
ADD 1 - ADD 0xFF . . . # this subtracts 1 from the acc
- XOR 0xFF . . . # this performs an effective logical NOT operation
-
-
- LD 0x05 # a constant
- AND 0x0F # isolates the lower nybble
- LD 0x36 . . . # useful for HMAC processing
-
- JPI
- JSI
- ERA
-
- LD (A0), 2
- ADD (A0), 3
- AND (A0), 4
- ST (A0), 7
TABLE 7 |
Address register selection |
address register | |||
Opcode2-1 | selected | ||
00 | |
||
01 | |
||
10 | A2 | ||
11 | A3 | ||
TABLE 8 |
Interpretation of counter for DBR |
Opcode0 | interpretion | ||
0 | |
||
1 | C2 | ||
-
- LD (A2), C1
- ADD (A1), C1
- ST (A3), C2
TABLE 9 |
Interpretation of operand for ROR |
bits 3-0 | interpretion |
0000 | RB |
0001 | XRB |
0010 | WriteMask |
0011 | 1 |
0100 | — (reserved) |
0101 | 3 |
0110 | 31 |
0111 | 24 |
1000 | C1 |
1001 | C2 |
1010 | — (reserved) |
1011 | — (reserved) |
1100 | 8 |
1101 | ID |
1110 | InByte |
1111 | OutByte |
TABLE 10 |
Pin connections to QA IC |
pin | direction | description |
Vdd | In | Nominal voltage. If the voltage deviates |
from this by more than a fixed amount, | ||
the chip will RESET. | ||
GND | In | |
SClk | In | Serial clock |
SDa | In/Out | Serial data |
TABLE 11 |
Breakdown of Area for QA IC |
approximate | |
area | |
(mm2) | description |
0.49 | 8 KByte flash memory |
TSMC: SFC0008_08B9_HE | |
(8K × 8-bits, erase page size = 512 bytes) | |
Area = 724.688 m × 682.05 m. | |
0.08 | 3072 bits of static RAM |
0.38 | General logic |
0.05 | |
1 | TOTAL (approximate) |
-
- Flash process
- Internal randomized clock
- Temperature based clock filter
- Noise generator
- Tamper Prevention and Detection circuitry
- Protected memory with tamper detection
- Boot-strap circuitry for loading program code
- Data connections in polysilicon layers where possible
- OverUnderPower Detection Unit
- No scan-chains or BIST
-
- Idle Mode: is the startup mode for the IOU if the fuse has not yet been blown. Idle Mode is the mode where the QA IC is waiting for the next command from the master. Input signals from the CPU are ignored.
- Program Mode: is where the QA IC erases all currently stored data in the Flash memory (program and secret key information) and then allows new data to be written to the Flash. The IOU stays in Program Mode until told to enter another mode.
- Active Mode: is the startup mode for the IOU if the fuse has been blown (the program is safe to run). Active Mode is where the QA IC allows the program code to be executed to process the master's specific command. The IOU returns to Idle Mode automatically when the command has been processed, or if the time taken between consuming input bytes (while the master is writing the data) or generating output bytes (while the master is reading the results) is too great.
- Trim Mode: is where the QA IC allows the generation and setting of a trim value to be used on the internal ring oscillator clock value. This must be done for safety reasons before a program can be stored in the Flash memory.
-
- 8K×8-bit main memory, plus 128×8-bit information memory
- 512 byte page erase
- Endurance of 20,000 cycles (min)
- Greater than 100 years data retention at room temperature
- Access time: 20 ns (max)
- Byte write time: 20 s (min)
- Page erase time: 20 ms (min)
- Device erase time: 200 ms (min)
- Area of 0.494 mm2 (724.66 m×682.05 m)
-
- Reads from InByte should wait until InByteValid is set. InByteValid will remain clear until the master has written the next input byte to the QA IC. When the IOU is told (by the FEU or MU) that InByte has been read, the IOU clears the InByteValid bit to allow the next byte to be read from the client.
- Writes to OutByte should wait until OutByteValid is clear. Writing OutByte sets the OutByteValid bit to signify that data is available to be transmitted to the master. OutByteValid will then remain set until the master has read the data from OutByte. If the master requests a byte but OutByteValid is clear, the IOU sends a NAck to indicate the data is not yet ready.
TABLE 12 |
IOMode values |
Value | Interpretation |
00 | |
01 | |
10 | Active Mode |
11 | Trim Mode |
Logic1 | IOMode = 01 (Program) | ||
Logic2 | IOMode = 10 (Active) | ||
Logic3 | IOMode = 11 (Trim) | ||
-
- Program Mode involves erasing the existing flash memory and loading the new program/data into the flash. The program that is loaded can be a bootstrap program if desired, and may contain additional program code to produce a digital signature of the final program to verify that the program was written correctly (e.g. by producing a SHA-1 signature of the entire flash memory).
- Trim Mode involves counting the number of internal cycles that have elapsed between the entry of Trim Mode (at the falling edge of the ack) and the receipt of the next byte (at the falling edge of the last bit before the ack) from the Master. When the byte is received, the current count value divided by 2 is transmitted to the Master.
-
- writes are to main memory
- reads are from information block memory
TABLE 13 |
VDD limits |
VDD parameter | Description | Voltage | ||
VDDFTmax | Flash test maximum | 3.62 | ||
VDDFTtyp | Flash test typical | 3.3 | ||
VDDFTmin | Flash test minimum | 3.0 | ||
VDDmax | Normal operation maximum | 2.753 | ||
(typ + 10%) | ||||
VDDtyp | Normal operation typical | 2.5 | ||
VDDmin | Normal operation minimum | 2.375 | ||
(typ − 5%) | ||||
VDDPORmax | Power on reset maximum | 2.04 | ||
2The voltage VDDFT may only be applied for the times specified in the TSMC Flash memory test document. | ||||
3Voltage regulators used to derive VDD will typically have symmetric tolerance limits | ||||
4The minimum allowable voltage for Flash memory operation. | ||||
5Over PVT, not including offsets |
TABLE 14 |
Bandgap target performance |
Parameter | Conditions | Min | Typ | Max | Units | ||
Vbg5 | typical | 1.2 | 1.23 | 1.26 | V | ||
IDD | typical | 50 | A | ||||
Vstart | worst case | 1.6 | | ||||
Iout | |||||||
10 | nA | ||||||
Vtemp | +0.1 | mV/° C. | |||||
-
- underL controls the power on reset; and
- PwrFailing indicates possible failure of the power supply.
TABLE 15 |
Power on reset target performance |
Parameter | Conditions | Min | Typ | Max | Units | ||
Vthrup | T = 27° C. | 2.0 | 2.375 | V | |||
Vthrdn | T = 27° C. | 2.0 | 2.1 | | |||
Vhystmin | |||||||
16 | mV | ||||||
IDD | 5 | A | |||||
Tspike | 100 | Ns | |||||
Vminr | 0.5 | | |||||
Tpwmin | |||||||
1 | Ns | ||||||
Power on Reset Behaviour
TABLE 16 |
Power failing detection target performance |
Parameter | Conditions | Min | Typ | Max | Units | ||
Vthr | T = 27° C. | 2.1 | 2.2 | 2.3 | V6 | ||
Vhyst | 16 | mV | |||||
IDD | 5 | A | |||||
Tspike | 100 | Ns | |||||
Vminr | 0.5 | V | |||||
6These limits are after trimming and include an allowance for VDD ramping. |
-
- voltage
- temperature
- ageing
- added jitter
- errors in frequency measurement and setting accuracy
TABLE 17 |
Programmable current source target performance |
Parameter | Conditions | Min | Typ | Max | Units | ||
Iout | Trim7-2 = 0 | 5 | A | ||||
Trim7-2 = | 12.5 | ||||||
32 | 20 | ||||||
Trim7-2 = | |||||||
63 | |||||||
Vrefin | 1.23 | V | |||||
Rout | Trim7-2 = | 2.5 | M | ||||
63 | |||||||
TABLE 18 |
Ring oscillator target performance |
Parameter | Conditions | Min | Typ | | Units | ||
Fosc |
7 | 7 | 10 | 14 | MHz | ||
IDD | 10 | A | ||||
|
1 | MHz/A | ||||
KVDD | +200 | KHz/V | ||||
KT | +30 | KHz/° C. | ||||
Vstart | 1.5 | V | ||||
KI = control sensitivity, | ||||||
KVDD = VDD sensitivity, | ||||||
KT = temperature sensitivity | ||||||
7Accounting for division by 5 |
-
- With the figures above, KVDD will give rise to a maximum variation of ±50 kHz and KT to ±1.8 MHz over the specified range of VDD and temperature.
TABLE 19 |
Div5 target performance |
Parameter | Conditions | Min | Typ | Max | Units | ||
Fmax | Vdd = 1.5 V | 100 | MHz | ||||
IDD | 10 | A | |||||
Claims (9)
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US12/564,045 US8005636B2 (en) | 2002-12-02 | 2009-09-21 | Method of controlling clock signal |
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Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AU2002953134A AU2002953134A0 (en) | 2002-12-02 | 2002-12-02 | Method and apparatus (auth16) |
AU2002953135 | 2002-12-02 | ||
AU2002953134 | 2002-12-02 | ||
AU2002953135A AU2002953135A0 (en) | 2002-12-02 | 2002-12-02 | Method and apparatus (pec10) |
US10/727,210 US7096137B2 (en) | 2002-12-02 | 2003-12-02 | Clock trim mechanism for onboard system clock |
US11/212,702 US7171323B2 (en) | 2002-12-02 | 2005-08-29 | Integrated circuit having clock trim circuitry |
US11/488,841 US7328115B2 (en) | 2002-12-02 | 2006-07-19 | Quality assurance IC having clock trimmer |
US11/951,213 US7610163B2 (en) | 2002-12-02 | 2007-12-05 | Method of controlling quality for a print controller |
US12/564,045 US8005636B2 (en) | 2002-12-02 | 2009-09-21 | Method of controlling clock signal |
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US11/951,213 Continuation US7610163B2 (en) | 2002-12-02 | 2007-12-05 | Method of controlling quality for a print controller |
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US20100010767A1 US20100010767A1 (en) | 2010-01-14 |
US8005636B2 true US8005636B2 (en) | 2011-08-23 |
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US10/727,180 Abandoned US20040199786A1 (en) | 2002-12-02 | 2003-12-02 | Randomisation of the location of secret information on each of a series of integrated circuits |
US10/727,204 Active 2024-12-05 US7121639B2 (en) | 2002-12-02 | 2003-12-02 | Data rate equalisation to account for relatively different printhead widths |
US10/727,160 Abandoned US20040249757A1 (en) | 2002-12-02 | 2003-12-02 | Authentication of resources usage in a multi-user environment |
US10/727,238 Expired - Fee Related US7278034B2 (en) | 2002-12-02 | 2003-12-02 | Integrated circuit which disables writing circuitry to memory when the power drops below a power threshold predetermined and controlled by the processor |
US10/727,227 Abandoned US20040201647A1 (en) | 2002-12-02 | 2003-12-02 | Stitching of integrated circuit components |
US10/727,251 Active 2025-06-26 US7188282B2 (en) | 2002-12-02 | 2003-12-02 | Tamper resistant shadow memory |
US10/727,162 Abandoned US20060082609A1 (en) | 2002-12-02 | 2003-12-02 | Compensation for horizontal skew between adjacent rows of nozzles on a printhead module |
US10/727,280 Expired - Fee Related US7152942B2 (en) | 2002-12-02 | 2003-12-02 | Fixative compensation |
US10/727,178 Active 2025-01-16 US7181572B2 (en) | 2002-12-02 | 2003-12-02 | Cache updating method and apparatus |
US10/727,157 Expired - Fee Related US7818519B2 (en) | 2002-12-02 | 2003-12-02 | Timeslot arbitration scheme |
US10/727,161 Expired - Fee Related US7523111B2 (en) | 2002-12-02 | 2003-12-02 | Labelling of secret information |
US10/727,159 Expired - Fee Related US7592829B2 (en) | 2002-12-02 | 2003-12-02 | On-chip storage of secret information as inverse pair |
US10/727,158 Expired - Fee Related US7660998B2 (en) | 2002-12-02 | 2003-12-02 | Relatively unique ID in integrated circuit |
US10/727,233 Active 2025-03-26 US7165824B2 (en) | 2002-12-02 | 2003-12-02 | Dead nozzle compensation |
US10/727,257 Expired - Fee Related US7302592B2 (en) | 2002-12-02 | 2003-12-02 | Integrated circuit which disables writing circuitry to memory when the power drops below a power threshold predetermined and controlled by the processor |
US10/727,179 Abandoned US20050213761A1 (en) | 2002-12-02 | 2003-12-02 | Storing number and a result of a function on an integrated circuit |
US10/727,274 Expired - Fee Related US7770008B2 (en) | 2002-12-02 | 2003-12-02 | Embedding data and information related to function with which data is associated into a payload |
US10/727,245 Expired - Lifetime US7399043B2 (en) | 2002-12-02 | 2003-12-02 | Compensation for uneven printhead module lengths in a multi-module printhead |
US10/727,198 Expired - Fee Related US7573301B2 (en) | 2002-12-02 | 2003-12-02 | Temperature based filter for an on-chip system clock |
US10/727,164 Expired - Fee Related US7707621B2 (en) | 2002-12-02 | 2003-12-02 | Creation and usage of mutually exclusive messages |
US10/727,163 Active 2025-07-10 US7377608B2 (en) | 2002-12-02 | 2003-12-02 | Compensation for vertical skew between adjacent rows of nozzles on a printhead module |
US10/727,192 Abandoned US20040225881A1 (en) | 2002-12-02 | 2003-12-02 | Variant keys |
US10/727,210 Expired - Lifetime US7096137B2 (en) | 2002-12-02 | 2003-12-02 | Clock trim mechanism for onboard system clock |
US10/754,536 Expired - Fee Related US7783886B2 (en) | 2002-12-02 | 2004-01-12 | Multi-level boot hierarchy for software development on an integrated circuit |
US10/754,938 Expired - Fee Related US7831827B2 (en) | 2002-12-02 | 2004-01-12 | Authenticated communication between multiple entities |
US11/212,702 Expired - Fee Related US7171323B2 (en) | 2002-12-02 | 2005-08-29 | Integrated circuit having clock trim circuitry |
US11/272,491 Expired - Fee Related US7278697B2 (en) | 2002-12-02 | 2005-11-14 | Data rate supply proportional to the ratio of different printhead lengths |
US11/442,131 Expired - Fee Related US7465005B2 (en) | 2002-12-02 | 2006-05-30 | Printer controller with dead nozzle compensation |
US11/474,278 Expired - Fee Related US7360131B2 (en) | 2002-12-02 | 2006-06-26 | Printer controller having tamper resistant shadow memory |
US11/488,841 Expired - Fee Related US7328115B2 (en) | 2002-12-02 | 2006-07-19 | Quality assurance IC having clock trimmer |
US11/749,749 Expired - Fee Related US7805626B2 (en) | 2002-12-02 | 2007-05-16 | Print engine having authentication device for disabling memory writing upon power drop |
US11/749,750 Expired - Fee Related US7747887B2 (en) | 2002-12-02 | 2007-05-16 | Print engine having authentication device for preventing multi-word memory writing upon power drop |
US11/951,213 Expired - Fee Related US7610163B2 (en) | 2002-12-02 | 2007-12-05 | Method of controlling quality for a print controller |
US11/955,127 Expired - Lifetime US7467839B2 (en) | 2002-12-02 | 2007-12-12 | Printer controller with equalised data supply rate to multi-color printhead ICS |
US12/043,844 Abandoned US20080150997A1 (en) | 2002-12-02 | 2008-03-06 | Method Of Manufacturing Printhead ICS Incorporating Mems Inkjet Nozzles |
US12/047,315 Abandoned US20080155826A1 (en) | 2002-12-02 | 2008-03-12 | Method of manufacturing mems ics |
US12/050,941 Expired - Lifetime US7540579B2 (en) | 2002-12-02 | 2008-03-19 | Controller for multi-color, multi-length printhead ICS |
US12/266,479 Abandoned US20090058903A1 (en) | 2002-12-02 | 2008-11-06 | Printer controller configured to compensate for dead printhead nozzles |
US12/276,368 Expired - Fee Related US7611215B2 (en) | 2002-12-02 | 2008-11-23 | Inkjet printer system having equalised control of multi-length printhead ICS |
US12/324,889 Expired - Fee Related US7747646B2 (en) | 2002-12-02 | 2008-11-27 | System having secure access between IC entities |
US12/436,129 Expired - Fee Related US7722146B2 (en) | 2002-12-02 | 2009-05-06 | Printing system having controlled multi-length printhead ICS |
US12/500,593 Expired - Fee Related US7800410B2 (en) | 2002-12-02 | 2009-07-09 | Integrated circuit having temperature based clock filter |
US12/505,513 Abandoned US20090284279A1 (en) | 2002-12-02 | 2009-07-19 | Integrated Circuit Having Inverse Bit Storage Test |
US12/564,045 Expired - Fee Related US8005636B2 (en) | 2002-12-02 | 2009-09-21 | Method of controlling clock signal |
US12/582,632 Expired - Fee Related US7976116B2 (en) | 2002-12-02 | 2009-10-20 | Inkjet printer system having equalised control of different nozzle count printhead ICs |
US12/697,272 Expired - Fee Related US7996880B2 (en) | 2002-12-02 | 2010-01-31 | Secure updating of integrated circuits |
US12/778,966 Abandoned US20100223453A1 (en) | 2002-12-02 | 2010-05-12 | Integrated circuit for validating and decrypting software data |
US12/790,945 Abandoned US20100238213A1 (en) | 2002-12-02 | 2010-05-31 | Method for dead nozzle remapping |
US12/958,968 Expired - Fee Related US8038239B2 (en) | 2002-12-02 | 2010-12-02 | Controller for printhead having arbitrarily joined nozzle rows |
Family Applications Before (43)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/727,180 Abandoned US20040199786A1 (en) | 2002-12-02 | 2003-12-02 | Randomisation of the location of secret information on each of a series of integrated circuits |
US10/727,204 Active 2024-12-05 US7121639B2 (en) | 2002-12-02 | 2003-12-02 | Data rate equalisation to account for relatively different printhead widths |
US10/727,160 Abandoned US20040249757A1 (en) | 2002-12-02 | 2003-12-02 | Authentication of resources usage in a multi-user environment |
US10/727,238 Expired - Fee Related US7278034B2 (en) | 2002-12-02 | 2003-12-02 | Integrated circuit which disables writing circuitry to memory when the power drops below a power threshold predetermined and controlled by the processor |
US10/727,227 Abandoned US20040201647A1 (en) | 2002-12-02 | 2003-12-02 | Stitching of integrated circuit components |
US10/727,251 Active 2025-06-26 US7188282B2 (en) | 2002-12-02 | 2003-12-02 | Tamper resistant shadow memory |
US10/727,162 Abandoned US20060082609A1 (en) | 2002-12-02 | 2003-12-02 | Compensation for horizontal skew between adjacent rows of nozzles on a printhead module |
US10/727,280 Expired - Fee Related US7152942B2 (en) | 2002-12-02 | 2003-12-02 | Fixative compensation |
US10/727,178 Active 2025-01-16 US7181572B2 (en) | 2002-12-02 | 2003-12-02 | Cache updating method and apparatus |
US10/727,157 Expired - Fee Related US7818519B2 (en) | 2002-12-02 | 2003-12-02 | Timeslot arbitration scheme |
US10/727,161 Expired - Fee Related US7523111B2 (en) | 2002-12-02 | 2003-12-02 | Labelling of secret information |
US10/727,159 Expired - Fee Related US7592829B2 (en) | 2002-12-02 | 2003-12-02 | On-chip storage of secret information as inverse pair |
US10/727,158 Expired - Fee Related US7660998B2 (en) | 2002-12-02 | 2003-12-02 | Relatively unique ID in integrated circuit |
US10/727,233 Active 2025-03-26 US7165824B2 (en) | 2002-12-02 | 2003-12-02 | Dead nozzle compensation |
US10/727,257 Expired - Fee Related US7302592B2 (en) | 2002-12-02 | 2003-12-02 | Integrated circuit which disables writing circuitry to memory when the power drops below a power threshold predetermined and controlled by the processor |
US10/727,179 Abandoned US20050213761A1 (en) | 2002-12-02 | 2003-12-02 | Storing number and a result of a function on an integrated circuit |
US10/727,274 Expired - Fee Related US7770008B2 (en) | 2002-12-02 | 2003-12-02 | Embedding data and information related to function with which data is associated into a payload |
US10/727,245 Expired - Lifetime US7399043B2 (en) | 2002-12-02 | 2003-12-02 | Compensation for uneven printhead module lengths in a multi-module printhead |
US10/727,198 Expired - Fee Related US7573301B2 (en) | 2002-12-02 | 2003-12-02 | Temperature based filter for an on-chip system clock |
US10/727,164 Expired - Fee Related US7707621B2 (en) | 2002-12-02 | 2003-12-02 | Creation and usage of mutually exclusive messages |
US10/727,163 Active 2025-07-10 US7377608B2 (en) | 2002-12-02 | 2003-12-02 | Compensation for vertical skew between adjacent rows of nozzles on a printhead module |
US10/727,192 Abandoned US20040225881A1 (en) | 2002-12-02 | 2003-12-02 | Variant keys |
US10/727,210 Expired - Lifetime US7096137B2 (en) | 2002-12-02 | 2003-12-02 | Clock trim mechanism for onboard system clock |
US10/754,536 Expired - Fee Related US7783886B2 (en) | 2002-12-02 | 2004-01-12 | Multi-level boot hierarchy for software development on an integrated circuit |
US10/754,938 Expired - Fee Related US7831827B2 (en) | 2002-12-02 | 2004-01-12 | Authenticated communication between multiple entities |
US11/212,702 Expired - Fee Related US7171323B2 (en) | 2002-12-02 | 2005-08-29 | Integrated circuit having clock trim circuitry |
US11/272,491 Expired - Fee Related US7278697B2 (en) | 2002-12-02 | 2005-11-14 | Data rate supply proportional to the ratio of different printhead lengths |
US11/442,131 Expired - Fee Related US7465005B2 (en) | 2002-12-02 | 2006-05-30 | Printer controller with dead nozzle compensation |
US11/474,278 Expired - Fee Related US7360131B2 (en) | 2002-12-02 | 2006-06-26 | Printer controller having tamper resistant shadow memory |
US11/488,841 Expired - Fee Related US7328115B2 (en) | 2002-12-02 | 2006-07-19 | Quality assurance IC having clock trimmer |
US11/749,749 Expired - Fee Related US7805626B2 (en) | 2002-12-02 | 2007-05-16 | Print engine having authentication device for disabling memory writing upon power drop |
US11/749,750 Expired - Fee Related US7747887B2 (en) | 2002-12-02 | 2007-05-16 | Print engine having authentication device for preventing multi-word memory writing upon power drop |
US11/951,213 Expired - Fee Related US7610163B2 (en) | 2002-12-02 | 2007-12-05 | Method of controlling quality for a print controller |
US11/955,127 Expired - Lifetime US7467839B2 (en) | 2002-12-02 | 2007-12-12 | Printer controller with equalised data supply rate to multi-color printhead ICS |
US12/043,844 Abandoned US20080150997A1 (en) | 2002-12-02 | 2008-03-06 | Method Of Manufacturing Printhead ICS Incorporating Mems Inkjet Nozzles |
US12/047,315 Abandoned US20080155826A1 (en) | 2002-12-02 | 2008-03-12 | Method of manufacturing mems ics |
US12/050,941 Expired - Lifetime US7540579B2 (en) | 2002-12-02 | 2008-03-19 | Controller for multi-color, multi-length printhead ICS |
US12/266,479 Abandoned US20090058903A1 (en) | 2002-12-02 | 2008-11-06 | Printer controller configured to compensate for dead printhead nozzles |
US12/276,368 Expired - Fee Related US7611215B2 (en) | 2002-12-02 | 2008-11-23 | Inkjet printer system having equalised control of multi-length printhead ICS |
US12/324,889 Expired - Fee Related US7747646B2 (en) | 2002-12-02 | 2008-11-27 | System having secure access between IC entities |
US12/436,129 Expired - Fee Related US7722146B2 (en) | 2002-12-02 | 2009-05-06 | Printing system having controlled multi-length printhead ICS |
US12/500,593 Expired - Fee Related US7800410B2 (en) | 2002-12-02 | 2009-07-09 | Integrated circuit having temperature based clock filter |
US12/505,513 Abandoned US20090284279A1 (en) | 2002-12-02 | 2009-07-19 | Integrated Circuit Having Inverse Bit Storage Test |
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Application Number | Title | Priority Date | Filing Date |
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US12/582,632 Expired - Fee Related US7976116B2 (en) | 2002-12-02 | 2009-10-20 | Inkjet printer system having equalised control of different nozzle count printhead ICs |
US12/697,272 Expired - Fee Related US7996880B2 (en) | 2002-12-02 | 2010-01-31 | Secure updating of integrated circuits |
US12/778,966 Abandoned US20100223453A1 (en) | 2002-12-02 | 2010-05-12 | Integrated circuit for validating and decrypting software data |
US12/790,945 Abandoned US20100238213A1 (en) | 2002-12-02 | 2010-05-31 | Method for dead nozzle remapping |
US12/958,968 Expired - Fee Related US8038239B2 (en) | 2002-12-02 | 2010-12-02 | Controller for printhead having arbitrarily joined nozzle rows |
Country Status (7)
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US (49) | US20040199786A1 (en) |
EP (1) | EP1572463B1 (en) |
AT (1) | ATE504446T1 (en) |
CA (1) | CA2508141C (en) |
DE (1) | DE60336677D1 (en) |
DK (1) | DK1572463T3 (en) |
WO (1) | WO2004050369A1 (en) |
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- 2009-07-09 US US12/500,593 patent/US7800410B2/en not_active Expired - Fee Related
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2010
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